TOUCH SENSING ELECTRODE STRUCTURE
Present disclosure is related to a touch sensing electrode structure. The structure includes multiple first electrode lines formed along a first direction spaced from each other. Each first electrode line has several first electrode blocks which are electrically connected with a space there-between. The structure also includes multiple second electrode lines along a second direction spaced from each other. The second electrode lines and the first electrode lines are overlapped and insulated. The second electrode line also includes several second electrode blocks which are electrically connected with a space. The every first or second electrode block has a plurality of second wires formed along the second direction and at least one first wire which is electrically connected with the second wires and formed along the first direction.
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1. Technical Field
The present invention is related to a touch sensing electrode structure; in particular, it's related to the sensing electrode structure applied to a touch panel.
2. Description of Related Art
A general touch panel adopts one or two layers of electrode plates for the purpose of sensing touching positions. In the conventional technologies, many multi-layer electrode structures have been developed. For example, a capacitance-type touch panel uses the electrodes to sense the capacitive change caused by static electricity when a touching event is made by a user's finger. By which the coordinate positions upon the touch panel can be determined by the electrodes over different directions.
To the electrode materials, it is such as the transparent conductive film made of Indium Tin Oxides (ITO). The demand for large-size touch panel currently requires metal lines to be the electrode structure. The metal lines are such as gold, silver, copper or the like. Through the metal electrode structure of the touch panel, it is achieved that the change of capacitance and the corresponding current over the electrodes may be used to judge the touching positions. In other words, the touching event may result in voltage difference in the coupled capacitors along the sensing electrodes over different directions, and therefore the touching position can be found.
The electrode structure shown in
The patterns of big lattices over the first electrode layer 11 and the second electrode layer 12 are complementary. There are not too many overlapped portions when the structure overlaps with others. The touching position can be obtained when the signals over the two directions within an area are simultaneously generated with any touching event triggered over the touch panel.
A controller 23 is disposed to connect with the first electrode 21 and the second electrode 22. This controller 23 powers the electrode sets (21, 22). An electric field is therefore formed between the first electrode 21 and the second electrode 22. The patterns formed on the first electrode 21 and the second electrode 22 are the latticed metal lines which are in-series connected with each other. These connected latticed metal lines are used to enhance the conductivity of the touch panel.
The mentioned reticular and latticed metal lines forming the patterns on the different types of electrode blocks according to the conventional technologies are to enhance the conductivity of the touch panel and also provide higher accuracy. However, the mentioned reticular or latticed electrode blocks may result in poor quality of a display because the patterns may reduce transmittance of the touch panel and shelter displayed image. Furthermore, the manufacturing process will be much complex since the patterns of reticular or latticed electrode blocks are complicated. Also, the conventional technologies may cost high because the complex patterns needs much more conductive materials.
SUMMARYTo enhance touching sensitivity and accuracy of a touch panel, and also with high transparency, disclosure is related to touch sensing electrode structure. It is worth noting that the touch sensing electrode structure is provided for effectively preventing optical interference stripes caused by the electrode patterns. The structure also advantages the product to reduce cost.
In an exemplary embodiment, the electrode structure includes a plurality of first electrode lines and second electrode lines. The first electrode lines are formed along a first direction and spaced from each other. The each first electrode line includes multiple first electrode blocks which are electrically interconnected and spaced at intervals. Also, the multiple second electrode lines are disposed along a second direction and spaced from each other. The second electrode lines are insulated from and overlapped with the first electrode lines. The each second electrode line includes multiple electrically-connected second electrode blocks which are spaced at intervals.
In one embodiment of the invention, both the first electrode block and the second electrode block include a plurality of second wires spaced from each other along the second direction, and at least one first wire electrically connected with the second wires along the first direction.
Further, according to one of the embodiments, the first electrode lines, the second electrode lines, the first wires and the second wires are atilt disposed relative to a horizontal direction. The every first electrode line further includes multiple third wires which electrically connect with the first wires of the adjacent first electrode blocks. The second electrode line also includes multiple fourth wires that electrically connect with the second wires between the adjacent second electrode blocks.
Furthermore, the described first electrode block and the second electrode block may be formed with some other geometric contours such as rhombic or hexagonal.
In order to further understand the techniques, means and effects of the present disclosure, the following detailed descriptions and appended drawings are hereby referred, such that, through which, the purposes, features and aspects of the present disclosure can be thoroughly and concretely appreciated; however, the appended drawings are merely provided for reference and illustration, without any intention to be used for limiting the present disclosure.
Reference will now be made in detail to the exemplary embodiments of the present disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
According to one of the embodiment of the present invention, disclosed is to a touch sensing electrode structure that is applicable to a touch panel, especially to medium or large-sized touch panel. Reference is made to
As the figure describes, the first electrode line 31 further includes third wires 3103. The one third wire 3103 is electrically connected with the first wires 3101 of the two adjacent first electrode blocks 310. Therefore, the two adjacent first electrode blocks 310 are conducted. It is noted that the first electrode block 310 preferably has rhombic or hexagonal (not shown) geometric contour.
Next,
References are made to
It is worth noting that, according to the preferred embodiment of the invention, the first electrode lines 41, the first wires 4101, and the second wires 4102 are atilt disposed relative to the horizontal direction (X). The atilt angle is around 30 through 60 degrees. This atilt angle may be able to restrain the optical interference stripes caused by the wires of the touch panel optically interact with the pixel electrodes of a display panel (not shown).
Refer to the embodiments shown in
According to the present embodiment, the second electrode lines 42, the first wires 4201, and the second wires 4202 are atilt disposed relative to the horizontal direction (X). In which, the related atilt angle is around 30 through 60 degrees. The design may effectively prevent the optical interference stripes caused by the wires within the touch panel optically interact with the pixel electrodes of a display panel (not shown).
One further embodiment is shown in
To sum up, the disclosure is related to a touch sensing electrode structure which is with high light transmittance. In which the first electrode block and the second electrode block may have rhombic or hexagonal geometric contour. The structure is adapted to a large touch sensing area. The relate touch panel provides high touching sensitivity and accuracy. Furthermore, the invention is provided to simplify the method of manufacturing the electrode structure, reduce cost, and with industrial application.
The above-mentioned descriptions represent merely the exemplary embodiment of the present disclosure, without any intention to limit the scope of the present disclosure thereto. Various equivalent changes, alternations or modifications based on the claims of present disclosure are all consequently viewed as being embraced by the scope of the present disclosure.
Claims
1. A touch sensing electrode structure, comprising:
- a plurality of first electrode lines spaced from each other and formed along a first direction, wherein over the first electrode line a plurality of electrically-connected first electrode blocks are formed and spaced at intervals;
- a plurality of second electrode lines spaced from each other and formed along a second direction, further insulated from and overlapped with the first electrode lines, wherein over the second electrode line a plurality of electrically-connected second electrode blocks are formed and spaced at intervals; and
- wherein, both the first electrode block and the second electrode block include a plurality of second wires spaced from each other along the second direction, and at least one first wire electrically connected with the second wires along the first direction.
2. The electrode structure according to claim 1, wherein the first electrode line includes multiple third wires, and one of the third wires is electrically connected to the first wires of the two adjacent first electrode blocks.
3. The electrode structure according to claim 1, wherein the second electrode line includes multiple fourth wires, and one of the fourth wires is electrically connected to the second wires of the two adjacent second electrode blocks.
4. The electrode structure according to claim 1, wherein both the first electrode block and the second electrode block have rhombic or hexagonal geometric contours.
5. The electrode structure according to claim 1, wherein the first electrode line, the second electrode line, the first wire, and the second wire are atilt disposed relative to a horizontal direction.
6. The electrode structure according to claim 1, wherein the first wire and the second wire are formed from transparent conductive material, single-layer metal material, or double-layer metal material.
7. The electrode structure according to claim 6, wherein the single-layer metal material is one selected from copper, gold, silver, chromium, nickel, zinc, aluminum, tin, titanium, copper-nickel alloy, copper-chromium alloy, and copper-nickel-chromium alloy.
8. The electrode structure according to claim 6, wherein the double-layer metal material is formed by a copper bottom layer, and a coated layer selected from copper-nickel alloy, copper-chromium alloy and copper-nickel-chromium alloy.
Type: Application
Filed: Apr 21, 2013
Publication Date: Sep 18, 2014
Patent Grant number: 9075456
Applicant: J TOUCH CORPORATION (Taoyuan County)
Inventors: YU-CHOU YEH (TAOYUAN COUNTY), TZU CHUN TAI (TAOYUAN COUNTY), TSUNG-HER YEH (NEW TAIPEI CITY)
Application Number: 13/867,087
International Classification: G06F 3/0354 (20060101);